Interactive Geoinformation Three-Dimensional Model of a Landscape Park Using Geoinformatics Tools

M. Ayaz Ahmad, Irina Tvoroshenko, Jalal Hasan Baker, Liubov Kochura, Vyacheslav Lyashenko

Abstract


The relevance of work is due to the lack of free three-dimensional models of landscape parks and the urgent need to create such models for informing and barrier-free adaptation of users. The current state of cartographic support of landscape parks is low and does not meet users, management, and employees of parks. The object of research is the territory of the multicomplex. The purpose of the research is to develop a three-dimensional model of the regional landscape park for informing and barrier-free adaptation of residents and guests of the city using geoinformatics tools. The methods used in this research are general scientific (system analysis, modeling, higher mathematics) and special methods of mathematical and geoinformation analysis. The work uses the ArcGIS and SketchUp software platforms to create, manage, integrate, analyze, and distribute spatial data. Methods used: geodesy, topography, geoinformatics. The results obtained in the course of the work are of practical importance, are real and tested by the management of the regional landscape park. An interactive three-dimensional geoinformation model implemented in the ArcScene software environment will provide an opportunity further to manage the territory of the regional landscape park. An interactive geoinformation three-dimensional model ensured a 12% increase in the level of informational and barrier-free adaptation of residents and guests on the territory of the multicomplex. The prospects for further research on the creation of a mobile application for park visitors with the ability to search for the nearest bus departure point at their location are determined.

Keywords


interactive geoinformation model; geoinformatics; data analysis; spatial features; geodatabase; vectorization; ArcGIS; SketchUp; geodetic support; cartographic basis.

Full Text:

PDF

References


I. M. Lochhead, and N. Hedley, “Modeling evacuation in institutional space: Linking three-dimensional data capture, simulation, analysis, and visualization workflows for risk assessment and communication,†Information Visualization, vol. 18, no. 1, pp. 173–192, 2019.

I. S. Tvoroshenko, and V. A. Tabashnyk, “Development of a spatial model of geoinformation support for people with disabilities in wheelchairs in Kharkiv,†Collection of scientific works of KhNUPS, vol. 1, no. 55, pp. 122–128, 2018.

M. Hao, D. Wang, C. Deng, Z. He, J. Zhang, D. Xue, and X. Ling, “3D geological modeling and visualization of above-ground and underground integration–taking the Unicorn Island in Tianfu new area as an example,†Earth Sci. Inf., vol. 12, no. 4, pp. 465–474, 2019.

K. S. Noh, D. B. Shin, and J. W. Ahn, “A Study on the Utilization of 3D Spatial-Grid for Coastal Area Management,†Journal of Coastal Research, vol. 91, no. sp1, pp. 356–360, 2019.

L. Tang, X. Peng, C. Chen, H. Huang, and D. Lin, “Three-dimensional Forest growth simulation in virtual geographic environments,†Earth Sci. Inf., vol. 12, no. 1, pp. 31–41, 2019.

D. Chang, S. Tummala, D. Sotero, and et al., “Three-Dimensional Printing for Procedure Rehearsal/Simulation/Planning in Interventional Radiology,†Techniques in vascular and interventional radiology, vol. 22, no. 1, pp. 14–20, 2019.

I. S. Tvoroshenko, and V. О. Gorokhovatsky, “Effective tuning of membership function parameters in fuzzy systems based on multi-valued interval logic,†Telecommunications and Radio Engineering, vol. 79, no. 2, 149–163, 2020.

J. Kotikov, “GIS-modeling of multimodal complex road net-work and its traffic organization,†Transp. Res. Procedia, vol. 20, pp. 340–346, 2017.

B. P. Carter, “Identifying landscape modification using open data and tools: The charcoal hearths of the Blue Mountain, Pennsylvania,†Historical Archaeology, vol. 53, no. 2, pp. 432–443, 2019.

J. Branch, “Territorial Conflict in the Digital Age: Mapping Technologies and Negotiation,†International Studies Quarterly,

vol. 61, no. 3, pp. 557–569, 2017.

V. A. Petrov, A. V. Veselovskii, D. A. Kuz’mina, A. N. Plate, and

T. V. Gal’berg, “Spatial-temporal three-dimensional GIS modeling,†Autom. Doc. Math. Ling., vol. 49, no. 1, pp. 21–26, 2015.

Y. Fujino, K. Kiuchi, S. Shimizu, T. Yokota, and Y. Kuroda, “Integrated Autonomous Navigation System and Automatic Large Scale Three Dimensional Map Construction,†Journal of Robotics and Mechatronics, vol. 27, no. 4, pp. 401–409, 2015.

C. Pesaresi, and D. Pavia, “Multiphase procedure for landscape reconstruction and their evolution analysis. GIS modelling for areas exposed to high volcanic risk,†Journal of Research and Didactics in Geography, vol. 1, pp. 17–41, 2018.

N. Oleksiichenko, N. Gatalska, and M. Mavko, “Theoretical and methodological principles of memorial parks three-dimensional composition and ideological lines expressing means complex assessment,†Landscape Architecture and Art, vol. 12, no. 12, pp. 22–32, 2018.

T. Lin, H. Lin, and M. Hu, “Three-dimensional visibility analysis and visual quality computation for urban open spaces aided by Google SketchUp and WebGIS,†Environment and Planning B: Urban Analytics and City Science, vol. 44, no. 4, pp. 618–646, 2017.

M. M. Gryshko, National botanical garden [Electronic resource]. Access mode: http://www.nbg.kiev.ua/en

Central Park of recreation and leisure M. Gorkiy. Park map [Electronic resource]. Access mode: https://www.centralpark.kh.ua/en/karta-parka

Explore Disneyland Paris [Electronic resource]. Access mode: https://www.disneylandparis.com/en-us/maps

Map of the Garden [Electronic resource]. Access mode: https://www.botanicka.cz/en

National Park Service [Electronic resource]. Access mode: https://www.nps.gov/yell/planyourvisit/maps

Mapa do Jardim [Electronic resource]. Access mode: http://www.jbrj.gov.br/visitacao/mapajardim

NYBG garden navigator [Electronic resource]. Access mode: http://navigator.nybg.org/weboi/oecgi2.exe/Inet_ECM_Map_Popup?MapType=background

Keukenhof [Electronic resource]. Access mode: https://keukenhof.nl/en

Prefurbia Example: Town Center – Altoona, Wisconsin [Electronic resource]. Access mode: https://3dwarehouse.sketchup.com/model/u911aeb7c-8e98-467b-8744-1cd0ae00ba6e/Prefurbia-Example-Town-Center-Altoona-Wisconsin

ArcGIS Online [Electronic resource]. Access mode: https://www.arcgis.com/index.html

Y. I. Daradkeh, and I. Tvoroshenko, “Technologies for Making Reliable Decisions on a Variety of Effective Factors using Fuzzy Logic,†International Journal of Advanced Computer Science and Applications, vol. 11, no. 5, pp. 43–50, 2020.

A. G. Abdullina, K. T. Saparov, A. M. Sergeyeva,

A. Y. Yeginbayeva, and E. Atasoy, “The importance of toponymy of mugalzhary mountain plots and adjacent territories to the development of geoturism,†GeoJournal of Tourism and Geosites, vol. 25, no. 2, pp. 664–674, 2019.

I. S. Tvoroshenko, and O. O. Kramarenko, “Software determination of the optimal route by geoinformation technologies,†Radio Electronics Computer Science Control, vol. 3, pp. 131–142, 2019.




DOI: http://dx.doi.org/10.18517/ijaseit.10.5.11298

Refbacks

  • There are currently no refbacks.



Published by INSIGHT - Indonesian Society for Knowledge and Human Development